Academic literature on the topic 'Cycle de Stirling'

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Journal articles on the topic "Cycle de Stirling"

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Wang, Shulin, Baiao Liu, Gang Xiao, and Mingjiang Ni. "A Potential Method to Predict Performance of Positive Stirling Cycles Based on Reverse Ones." Energies 14, no. 21 (2021): 7040. http://dx.doi.org/10.3390/en14217040.

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There are two kinds of working mechanisms for the Stirling cycle, i.e., the positive and the reverse cycles, and a Stirling engine (SE) can be operated as a Stirling refrigerator (SR). This indicates that a probable practical method for evaluating the performance of a Stirling engine is to run it as a refrigerator, which is much easier to operate. For this purpose, an improved Simple model for both the positive and the reverse Stirling cycles, considering the various loss mechanisms and actual operating conditions, is proposed and verified by a self-designed Stirling engine. As to the positive
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Pandit, Tanmoy, Pritam Chattopadhyay, and Goutam Paul. "Non-commutative space engine: A boost to thermodynamic processes." Modern Physics Letters A 36, no. 24 (2021): 2150174. http://dx.doi.org/10.1142/s0217732321501741.

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We introduce quantum heat engines that perform quantum Otto cycle and the quantum Stirling cycle by using a coupled pair of harmonic oscillator as its working substance. In the quantum regime, different working medium is considered for the analysis of the engine models to boost the efficiency of the cycles. In this work, we present Otto and Stirling cycle in the quantum realm where the phase space is non-commutative in nature. By using the notion of quantum thermodynamics, we develop the thermodynamic variables in non-commutative phase space. We encounter a catalytic effect (boost) on the effi
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PROF., GOPAL REDDY K. "PRODUCTION OF ELECTRICITY BY SOLAR STIRLING ENGINE." IJIERT - International Journal of Innovations in Engineering Research and Technology 4, no. 7 (2017): 12–15. https://doi.org/10.5281/zenodo.1459092.

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<strong>The Stirling engine is both practically and theoretically a significant device,its practical virtue is simple,reliable and safe. The engine operates on a closed thermodynamic cycle,which is reversible. Today Stirling cycle - based systems are in commercial use as a heat pump,cryogenic refrigeration and air liquefaction. As a prime mover,Stirling cycles remain the subject of research and development efforts. A number of attempts have been made to build and improve the performance of Stirling engines. For successful operation of engine system with good efficiency,a careful design of heat
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Paul, Raphael, and Karl Heinz Hoffmann. "Optimizing the Piston Paths of Stirling Cycle Cryocoolers." Journal of Non-Equilibrium Thermodynamics 47, no. 2 (2022): 195–203. http://dx.doi.org/10.1515/jnet-2021-0073.

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Abstract The ideal Stirling cycle provides a clear control strategy for the piston paths of ideal representations of Stirling cycle machines. For non-equilibrium Stirling cycle machines however, piston paths aiming to emulate the ideal cycle’s four strokes will not necessarily yield best performance. In this contribution, we ask the question: What are the COP-optimal piston paths for specific non-equilibrium Stirling cryocoolers? To this end, we consider a low-effort Stirling cryocooler model that consists of a set of coupled ordinary differential equations and takes several loss phenomena int
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De Freitas Pinheiro, Gabriel, and Irene Magalhães Craveiro. "A NOTE ON STIRLING NUMBERS OF FIRST KIND AND CYCLE TYPES OF A PERMUTATION." Revista Sergipana de Matemática e Educação Matemática 9, no. 3 (2024): 35–47. http://dx.doi.org/10.34179/revisem.v9i3.21237.

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This paper proposes to establish a relationship between the Stirling numbers of the first kind and the cycle types of Sn, exhibiting the feasibility of a procedure to generate Stirling numbers of the first kind and proving some identities by the combination of these two concepts. This is possible due these numbers’ strong algebraic appeal, given that we can define them as the number of permutations of Sn that decompose into exactly k disjoint cycles. There is a bijective relationship between the cycle types of Sn and the partitions of a positive integer n, thus given a partition of n, we know
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Shaw, John E. "Comparing Carnot, Stirling, Otto, Brayton and Diesel Cycles." Transactions of the Missouri Academy of Science 42, no. 2008 (2008): 1–6. http://dx.doi.org/10.30956/0544-540x-42.2008.1.

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Comparing the efficiencies of the Carnot, Stirling, Otto, Brayton and Diesel cycles can be a frustrating experience for the student. The efficiency of Carnot and Stirling cycles depends only on the ratio of the temperature extremes whereas the efficiency of Otto and Brayton cycles depends only on the compression ratio. The efficiency of a Diesel cycle is generally expressed in terms of the temperatures at the four turning points of the cycle or the volumes at these turning points. How does one actually compare the efficiencies of these thermodynamic cycles? To compare the cycles, an expression
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Davey, G., and A. H. Orlowska. "Miniature stirling cycle cooler." Cryogenics 27, no. 3 (1987): 148–51. http://dx.doi.org/10.1016/0011-2275(87)90071-3.

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Morrison, Gale. "Stirling Renewal." Mechanical Engineering 121, no. 05 (1999): 62–65. http://dx.doi.org/10.1115/1.1999-may-4.

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This article presents an analysis that shows refrigerators and generators that use an alternative thermodynamic cycle are a green engineering hotbed. Developers say that designs based on the Stirling cycle offer significant efficiencies, and Stirling-based refrigeration systems need no fluorocarbons. Stirling engines are being investigated for distributed electric power generation. That's because many see more efficient generation right where the user wants it, as an alternative to building more fossil fuel-burning plants and then constructing miles and miles of grid lines for transmission. Ac
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Červenka, Libor. "Idealization of The Real Stirling Cycle." Journal of Middle European Construction and Design of Cars 14, no. 3 (2016): 19–27. http://dx.doi.org/10.1515/mecdc-2016-0011.

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Abstract The paper presents a potential idealization of the real Stirling cycle. This idealization is performed by modifying the piston movement corresponding to the ideal Stirling cycle. The focus is on the cycle thermodynamics with respect to the indicated efficiency and indicated power. A detailed 1-D simulation model of a Stirling engine is used as a tool for this assessment. The model includes real non-zero volumes of heater, regenerator, cooler and connecting pipe. The model is created in the GT Power commercial simulation software.
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S.Gokulsai. "Studies on Stirling power cycles- A Review." Journal of Advanced Mechanical Sciences 1, no. 2 (2022): 47–51. https://doi.org/10.5281/zenodo.7047307.

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The Stirling power cycle consists of 2 isothermal processes (heat supply and heat removal processes) and two isochoric processes (compression and expansion processes). The past held an extensive amount of research towards improving the performance by varying different parameters and studying the effect on the respective output characteristics. Here a comprehension of all the past research has been discussed concisely to provide a review of the modifications and design considerations that are to be considered for improving the performance of cycle and its applications in various fields of engin
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Dissertations / Theses on the topic "Cycle de Stirling"

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Ozbay, Sercan. "Thermal Analysis Of Stirling Cycle Regenerators." Master's thesis, METU, 2011. http://etd.lib.metu.edu.tr/upload/12613541/index.pdf.

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Stirling cycle cryocoolers are used widely in military applications. The regenerator is the key element of Stirling cycle cryocoolers. It is known that performance of the regenerator directly affects the cryocooler performance. Therefore, any improvement on the regenerator will lead to a more efficient cryocooler. Thus, it is essential to have an idea about regenerator parameters and their effects on the system. In this study Stirling engine regenerator, which is constructed by wire mesh screens, is accepted as a porous medium. Using energy balance and continuity equation, matrix and fluid the
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Wills, James Alexander. "Exergy analysis of a Stirling cycle." Master's thesis, University of Cape Town, 2017. http://hdl.handle.net/11427/26865.

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In this dissertation the analysis of the Stirling engine is presented, this research topic falls within the category of thermal energy conversion. The research that was conducted is presented in three chapters of which the topics are: the effects of allocation of volume on engine performance, the GPU-3 (Ground Power Unit - developed by GM) Stirling engine analysis, and the optimisation of a 1000 cm³ Stirling engine with finite heat capacity rates at the source and the sink. The Stirling engine has many advantages over other heat engines, as it is extremely quiet, has multi-fuel capabilities an
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Liang, Hua. "Viability of stirling-based combined cycle distributed power generation." Ohio : Ohio University, 1998. http://www.ohiolink.edu/etd/view.cgi?ohiou1176484842.

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Blaha, Josef. "Stirlingův motor." Master's thesis, Vysoké učení technické v Brně. Fakulta strojního inženýrství, 2008. http://www.nusl.cz/ntk/nusl-228037.

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This dissertation discusses Stirling’s cycle and its contribution using different approaches. There are calculation of Schmidt’s theory and distinctiveness between ideal and real cycle described. Based on my previous research, this work provides a detailed summary of different methods which are used to stimulate Stirling’s cycles as well as the motor as a whole. Attention is particularly dedicated to current utilization of this machine which is not broadly known within general public.
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Hugh, Mark A. "The effects of regenerator porosity on the performance of a high capacity stirling cycle cryocooler." Ohio : Ohio University, 1993. http://www.ohiolink.edu/etd/view.cgi?ohiou1175707790.

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Pfeiffer, Jens [Verfasser]. "Unsteady Analytical Model for Appendix Gap Losses in Stirling Cycle Machines / Jens Pfeiffer." München : Verlag Dr. Hut, 2016. http://d-nb.info/109781811X/34.

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Marin, Andreea. "Optimizarea exergoeconimică a unei centrale solare termice." Thesis, Paris 10, 2014. http://www.theses.fr/2014PA100054.

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Dans le contexte économique et énergétique actuel, la mise en œuvre de technologies à l'aide de l'énergie renouvelable comme source de chauffage offre un double avantage: la réduction de la pollution et des coûts de carburant. Il y a un besoin de promouvoir les sources renouvelables d'énergie comme les sources significatives de production d'énergie pour les systèmes décentralisés. Une première étude bibliographique a été fait sur les technologies existantes pour la production d'énergie électrique à partir du solaire. Cette étude consiste dans la recherche d’une nouvelle solution de conversion
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Seres, Sandu. "Life cycle assessment of hybrid systems for rural electrification in Bolivia." Thesis, KTH, Skolan för kemi, bioteknologi och hälsa (CBH), 2021. http://urn.kb.se/resolve?urn=urn:nbn:se:kth:diva-299637.

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Bolivia is a developing country in South America. Many rural communities still lack access to electricity. The extension of the National Grid System to all rural communities is not feasible due to economic and topographic challenges as well as the environmental problems that may arise. To tackle these problems, Off-grid solutions are implemented. Photovoltaic (PV) panels combined with batteries are a viable option for areas located close to the equator and high altitudes such as Bolivia. Almost always a controlled source of energy such as Diesel generators must complement the PV system due to
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Diallo, Alpha Dassimou. "Contribution à la conception et à la réalisation d'une micro-machine thermique à cycle de Stirling." Thesis, Bourgogne Franche-Comté, 2019. http://www.theses.fr/2019UBFCD035.

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En France, on estime que plus de 27 TWh de chaleur à une température comprise entre 100 et 200°C sont perdus chaque année. La récupération de cette chaleur perdue est donc un enjeu important pour réduire la consommation globale d'énergie. La récupération de la chaleur peut se faire à l'aide de machines de Stirling, qui sont des machines thermodynamiques réversibles convertissant la chaleur en mouvement mécanique - lequel pourrait ensuite être converti en électricité - à partir de deux sources de température suffisamment différentes. La récupération de la chaleur produite par les systèmes élect
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Cruz, Vinicius Guimarães da. "Desenvolvimento experimental de um motor stirling tipo gama." Universidade Federal da Paraí­ba, 2012. http://tede.biblioteca.ufpb.br:8080/handle/tede/5341.

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Made available in DSpace on 2015-05-08T14:59:44Z (GMT). No. of bitstreams: 1 arquivototal.pdf: 2663529 bytes, checksum: 5f0d6dec066e59a555afa41866bdae84 (MD5) Previous issue date: 2012-09-06<br>Coordenação de Aperfeiçoamento de Pessoal de Nível Superior - CAPES<br>The current paper develops an experimental Stirling engine Gama type. Different settings of this type of engine are presented (alpha, beta and gamma), along with the Stirling Cycle Definition and the mathematical modeling for each setting. It´s been Proceed a mathematical analysis based on the Stirling Theory, which is the method
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Books on the topic "Cycle de Stirling"

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Organ, Allan J. Stirling Cycle Engines. John Wiley & Sons Ltd, 2013. http://dx.doi.org/10.1002/9781118818428.

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Hall, C. Multidimensional computer simulation of Stirling cycle engines. Institute for Computational Mathematics and Applications, Dept. of Mathematics and Statistics, University of Pittsburgh, 1992.

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Tew, Roy C. Progress of Stirling cycle analysis and loss mechanism characterization. National Aeronautics and Space Administration, 1986.

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Gingery, David J. Build a two cylinder Stirling cycle engine. D.J. Gingery, 1990.

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Hughes, William O. Vibration testing of an operating Stirling convertor. National Aeronautics and Space Administration, Glenn Research Center, 2000.

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K, Shaltens Richard, United States. Dept. of Energy. Office of Vehicle and Engine Research and Development., and Lewis Research Center, eds. Automotive Stirling summary and overview. National Aeronautics and Space Administation, Lewis Research Center, 1985.

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United States. Dept. of Energy. Office of Vehicle and Engine Research and Development. and Lewis Research Center, eds. Stirling engine supporting research and technology. National Aeronautics and Space Administration, Lewis Research Center, 1985.

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V, Lorenz Gary, and United States. National Aeronautics and Space Administration., eds. RE-1000 free-piston Stirling engine sensitivity test results. National Aeronautics and Space Administration, 1986.

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V, Lorenz Gary, and United States. National Aeronautics and Space Administration., eds. RE-1000 free-piston Stirling engine sensitivity test results. National Aeronautics and Space Administration, 1986.

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V, Lorenz Gary, and United States. National Aeronautics and Space Administration., eds. RE-1000 free-piston Stirling engine sensitivity test results. National Aeronautics and Space Administration, 1986.

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Book chapters on the topic "Cycle de Stirling"

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Narayankhedkar, K. G. "Exergy Analysis of Stirling Cycle Cryogenerator." In Advances in Cryogenic Engineering. Springer US, 1998. http://dx.doi.org/10.1007/978-1-4757-9047-4_235.

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Colgate, Stirling A., and Albert G. Petschek. "Regenerator Optimization for Stirling Cycle Refrigeration." In Advances in Cryogenic Engineering. Springer US, 1994. http://dx.doi.org/10.1007/978-1-4615-2522-6_166.

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Colgate, S. A. "Regenerator Optimization for Stirling Cycle Refrigeration, II." In Cryocoolers 8. Springer US, 1995. http://dx.doi.org/10.1007/978-1-4757-9888-3_25.

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Cook, E. L., J. Hackett, James R. Drummond, G. S. Mand, and L. Burriesci. "MOPITT Stirling Cycle Cooler Vibration Performance Results." In Cryocoolers 9. Springer US, 1997. http://dx.doi.org/10.1007/978-1-4615-5869-9_82.

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Mand, G. S., J. R. Drummond, D. Henry, and J. Hackett. "MOPITT On-Orbit Stirling Cycle Cooler Performance." In Cryocoolers 11. Springer US, 2002. http://dx.doi.org/10.1007/0-306-47112-4_92.

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Clappier, Robert R., and Robert J. Kline-Schoder. "Precision Temperature Control of Stirling-Cycle Cryocoolers." In Advances in Cryogenic Engineering. Springer US, 1994. http://dx.doi.org/10.1007/978-1-4615-2522-6_144.

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Sun, Z. F., and C. G. Carrington. "Oscillating Flow Modelling of a Stirling Cycle Cryocooler." In A Cryogenic Engineering Conference Publication. Springer US, 1996. http://dx.doi.org/10.1007/978-1-4613-0373-2_194.

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Bradshaw, T. W., J. Delderfield, S. T. Werrett, and G. Davey. "Performance of the Oxford Miniature Stirling Cycle Refrigerator." In Advances in Cryogenic Engineering. Springer US, 1986. http://dx.doi.org/10.1007/978-1-4613-2213-9_90.

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Collins, S. A., A. H. Flotow, and J. D. Paduano. "Adaptive Vibration Cancellation for Split-Cycle Stirling Cryocoolers." In Advances in Cryogenic Engineering. Springer US, 1994. http://dx.doi.org/10.1007/978-1-4615-2522-6_169.

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Mon, G. R., G. T. Smedley, D. L. Johnson, and R. G. Ross. "Vibration Characteristics of Stirling Cycle Cryocoolers for Space Application." In Cryocoolers 8. Springer US, 1995. http://dx.doi.org/10.1007/978-1-4757-9888-3_20.

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Conference papers on the topic "Cycle de Stirling"

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Penswick, L. Barry. "Small Stirling Cycle Convertors." In SPACE TECHNOLOGY AND APPLICATIONS INT.FORUM-STAIF 2005: Conf.Thermophys in Micrograv;Conf Comm/Civil Next Gen.Space Transp; 22nd Symp Space Nucl.Powr Propuls.;Conf.Human/Robotic Techn.Nat'l Vision Space Expl.; 3rd Symp Space Colon.; 2nd Symp.New Frontiers. AIP, 2005. http://dx.doi.org/10.1063/1.1867154.

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"Two stage Stirling cycle cryogenic cooler." In Intersociety Energy Conversion Engineering Conference. American Institute of Aeronautics and Astronautics, 1994. http://dx.doi.org/10.2514/6.1994-4181.

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Smith, Joseph L., John H. Lienhard, Alexander K. Tziranis, and Yung Ho. "M.I.T. Stirling-Cycle Heat Transfer Apparatus." In 27th Intersociety Energy Conversion Engineering Conference (1992). SAE International, 1992. http://dx.doi.org/10.4271/929465.

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Pande, G. V., and H. Narayanamurthy. "Computer Analysis of Stirling Cycle Cryocooler." In International Conference on Environmental Systems. SAE International, 1995. http://dx.doi.org/10.4271/951720.

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Vaccarella, Annino, Robert Sharp, Robert Boz, et al. "Stirling cycle cryocooler exported vibration analysis." In Adaptive Optics Systems VI, edited by Dirk Schmidt, Laura Schreiber, and Laird M. Close. SPIE, 2018. http://dx.doi.org/10.1117/12.2313024.

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Carlqvist, Stig G., and Roy Kamo. "Combined Cycle Diesel-Stirling Heat Engine." In 1985 SAE International Off-Highway and Powerplant Congress and Exposition. SAE International, 1985. http://dx.doi.org/10.4271/851521.

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Welty, Stephen. "Hybrid Stirling/Otto Cycle for CCHP." In ASME 2015 9th International Conference on Energy Sustainability collocated with the ASME 2015 Power Conference, the ASME 2015 13th International Conference on Fuel Cell Science, Engineering and Technology, and the ASME 2015 Nuclear Forum. American Society of Mechanical Engineers, 2015. http://dx.doi.org/10.1115/es2015-49048.

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The use of a novel thermodynamic cycle combined with a high efficiency expander and compressor provides a unique product opportunity for residential, commercial and industrial Combined Cooling, Heating and Power (CCHP) applications. The cycle can be described as a combination between a Stirling Cycle and an Otto Cycle with isothermal compression followed by constant volume heat addition then by isentropic expansion with the final process being heat addition or heat reject in either a constant volume or constant pressure process. The cycle can be run in an open cycle or a closed cycle with the
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Clappier, Robert R., and Robert J. Kline-Schoder. "Precision temperature control of Stirling-cycle cryocoolers." In SPIE's International Symposium on Optical Engineering and Photonics in Aerospace Sensing, edited by James B. Heaney and Lawrence G. Burriesci. SPIE, 1994. http://dx.doi.org/10.1117/12.178598.

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Kobayashi, Y., M. Matsuo, N. Isshiki, and W. Ishida. "Elastic heat exchanger in Stirling cycle machines." In ENERGY 2007. WIT Press, 2007. http://dx.doi.org/10.2495/esus070081.

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Cullen, Barry, and Jim McGovern. "Proposed Otto Cycle/Stirling Cycle Hybrid Engine Based Power Generation System." In ASME 2008 Power Conference. ASMEDC, 2008. http://dx.doi.org/10.1115/power2008-60039.

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The generation of electrical and thermal power is a matter of critical importance to the modern world. Considerable quantities of both power types are required in all sectors of society; industrial, domestic and leisure, with the future prosperity of both developed and developing societies being dependant on generation of both a sufficient quantity and quality of power. Central to this discussion on the international front is the topic of fossil fuel usage. Despite considerable advances in renewable energy conversion technologies, the human race remains dependant on fossil fuels as a primary e
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Reports on the topic "Cycle de Stirling"

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Bloomfield, H. S. A reliability and mass perspective of SP-100 Stirling cycle lunar-base powerplant designs. Office of Scientific and Technical Information (OSTI), 1991. http://dx.doi.org/10.2172/5289985.

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